Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality

The image retargeting technique enhances compatibility across various display devices by adjusting the size and aspect ratio of the generated image. Though current image retargeting methods have achieved significant research advancements, they are still not applicable to all types of display devices...

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Main Author: MA Qian, DONG Wu, ZENG Qingtao, ZHANG Yan, LU Likun, ZHOU Ziyi
Format: Article
Language:zho
Published: Journal of Computer Engineering and Applications Beijing Co., Ltd., Science Press 2025-02-01
Series:Jisuanji kexue yu tansuo
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Online Access:http://fcst.ceaj.org/fileup/1673-9418/PDF/2404047.pdf
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author MA Qian, DONG Wu, ZENG Qingtao, ZHANG Yan, LU Likun, ZHOU Ziyi
author_facet MA Qian, DONG Wu, ZENG Qingtao, ZHANG Yan, LU Likun, ZHOU Ziyi
author_sort MA Qian, DONG Wu, ZENG Qingtao, ZHANG Yan, LU Likun, ZHOU Ziyi
collection DOAJ
description The image retargeting technique enhances compatibility across various display devices by adjusting the size and aspect ratio of the generated image. Though current image retargeting methods have achieved significant research advancements, they are still not applicable to all types of display devices. Artificial distortions may arise in image retargeting, reducing the user􀆳s visual experience and necessitating diverse quality evaluation methods to precisely assess the quality of the resulting retargeted image under various distortion types. This paper comprehensively summarizes the current research progress in image retargeting methods and objective quality evaluation techniques. Firstly, this paper provides an overview of retargeting methods, categorizes them into content-aware image retargeting methods and those based on deep learning techniques, and analyzes the advantages and disadvantages of the two types of methods. Subsequently, this paper delineates the attributes of objective quality evaluation methods for image retargeting, which is essential for the optimization and development of image retargeting methods, encompassing approaches grounded in underlying features and those reliant on multi-level features. This paper then delves into detailing the existing three datasets and conducts a comparative analysis of diverse methodologies for the objective quality evaluation of image retargeting. Finally, this paper proposes potential avenues for future research by addressing the current challenges in the image retargeting field.
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publishDate 2025-02-01
publisher Journal of Computer Engineering and Applications Beijing Co., Ltd., Science Press
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spelling doaj-art-34c0ea365b3544a1b51b2b0e91e434822025-08-20T03:17:43ZzhoJournal of Computer Engineering and Applications Beijing Co., Ltd., Science PressJisuanji kexue yu tansuo1673-94182025-02-0119231633310.3778/j.issn.1673-9418.2404047Review of Retargeting Methods and Assessment of Retargeted Image Objective QualityMA Qian, DONG Wu, ZENG Qingtao, ZHANG Yan, LU Likun, ZHOU Ziyi0Beijing Key Laboratory of Signal and Information Processing for High-End Printing Equipment, Beijing Institute of Graphic Communication, Beijing 102600, ChinaThe image retargeting technique enhances compatibility across various display devices by adjusting the size and aspect ratio of the generated image. Though current image retargeting methods have achieved significant research advancements, they are still not applicable to all types of display devices. Artificial distortions may arise in image retargeting, reducing the user􀆳s visual experience and necessitating diverse quality evaluation methods to precisely assess the quality of the resulting retargeted image under various distortion types. This paper comprehensively summarizes the current research progress in image retargeting methods and objective quality evaluation techniques. Firstly, this paper provides an overview of retargeting methods, categorizes them into content-aware image retargeting methods and those based on deep learning techniques, and analyzes the advantages and disadvantages of the two types of methods. Subsequently, this paper delineates the attributes of objective quality evaluation methods for image retargeting, which is essential for the optimization and development of image retargeting methods, encompassing approaches grounded in underlying features and those reliant on multi-level features. This paper then delves into detailing the existing three datasets and conducts a comparative analysis of diverse methodologies for the objective quality evaluation of image retargeting. Finally, this paper proposes potential avenues for future research by addressing the current challenges in the image retargeting field.http://fcst.ceaj.org/fileup/1673-9418/PDF/2404047.pdfimage retargeting; quality assessment; deep learning; multi-level feature
spellingShingle MA Qian, DONG Wu, ZENG Qingtao, ZHANG Yan, LU Likun, ZHOU Ziyi
Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality
Jisuanji kexue yu tansuo
image retargeting; quality assessment; deep learning; multi-level feature
title Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality
title_full Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality
title_fullStr Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality
title_full_unstemmed Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality
title_short Review of Retargeting Methods and Assessment of Retargeted Image Objective Quality
title_sort review of retargeting methods and assessment of retargeted image objective quality
topic image retargeting; quality assessment; deep learning; multi-level feature
url http://fcst.ceaj.org/fileup/1673-9418/PDF/2404047.pdf
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